超高分辨率中空蓝宝石波导与浸润透镜结合

А. С. Кучерявенко, В.А. Желнов, Н.В. Черномырдин, В. Н. Курлов, К. И. Зайцев, Г.М. Катыба
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引用次数: 0

摘要

太赫兹(THz)成像方法的发展受到传统衍射受限成像系统低空间分辨率的阻碍,主要是由于使用的辐射波长大(从几毫米到几十微米)。为了解决这一问题,我们提出了一种具有亚波长空间分辨率的太赫兹内窥镜新方法,该方法旨在研究生物体内难以到达的区域。采用外涂聚四氟乙烯的空心蓝宝石管作为波导,实现了辐射传输的抗谐振原理。波导和浸没透镜经过优化,在给定波长范围内提供高光学特性,以确保最佳聚焦。研制并制造了两个由蓝宝石和硅制成的浸没透镜,然后将其安装在固定在波导后端的平面平行窗口上。对“波导-透镜”系统阴影侧场强分布的研究表明,在波长λ = 500µm处,蓝宝石透镜的焦点光斑直径为0.2λ,晶体硅透镜的焦点光斑直径为0.3λ,明显超过了Abbe衍射极限。这与我们的数值预测一致,并证明了使用所提出的内窥镜进行亚波长分辨率测量的前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Сочетание полого сапфирового волновода и иммерсионной линзы для ТГц эндоскопии сверхвысокого разрешения
The development of terahertz (THz) imaging methods is hampered by the low spatial resolution of traditional diffraction-limited imaging systems, mainly due to the large wavelength of used radiation (from a few of mm to tens of µm). To solve this problem, we have proposed a new method of THz endoscopy with subwavelength spatial resolution, which is designed to study hard-to-reach areas of living organisms in vivo. A hollow-core sapphire tube with polytetrafluoroethylene outer coating is used as a waveguide, in which the antiresonant principle of radiation transmission is implemented. The waveguide and the immersion lens are optimized to provide high optical characteristics in a given wavelength range to ensure the best focusing. Two immersion lenses made of sapphire and silicon were developed and fabricated, which were then mounted on plane-parallel windows fixed on the rear end of the waveguide. The study of the field intensity distribution on the shadow side of the “waveguide–lens” system revealed a focal spot diameter of ≃0.2λ in the case of a lens made of sapphire and ≃0.3λ in the case of a lens made of crystal silicon at a wavelength λ = 500 µm, which significantly exceeds the Abbe diffraction limit. This agrees with our numerical predictions and demonstrates the promise of using the proposed endoscope for measurements with subwavelength resolution.
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